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Fast and Accurate Prediction of the Destination of Moving Objects

机译:快速准确地预测运动对象的目的地

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Companies and organizations that track moving objects are interested in predicting the intended destination of these moving objects. We develop a formal model for destination prediction problems where the agent (Predictor) predicting a destination may not know anything about the route planning mechanism used by another agent (Target) nor does the agent have historical information about the target's past movements nor do the observations about the agent have to be complete (there may be gaps when the target was not seen). We develop axioms that any destination probability function should satisfy and then provide a broad family of such functions guaranteed to satisfy the axioms. We experimentally compare our work with an existing method for destination prediction using Hidden Semi-Markov Models (HSMMs). We found our algorithms to be faster than the existing method. Considering prediction accuracy we found that, when the Predictor knows the route planning algorithm the target is using, the HSMM method is better, but without this assumption our algorithm is better.
机译:跟踪移动物体的公司和组织对预测这些移动物体的预期目标很感兴趣。我们针对目的地预测问题开发了一个正式的模型,其中预测目的地的代理(预测器)可能不了解其他代理(目标)使用的路线规划机制,该代理也没有有关目标过去的移动的历史信息,也没有观察到的信息有关代理的信息必须完整(当看不到目标时可能会有空白)。我们开发了任何目标概率函数都应满足的公理,然后提供了保证满足公理的此类函数的广泛族。我们通过实验将我们的工作与使用隐式半马尔可夫模型(HSMM)进行目的地预测的现有方法进行比较。我们发现我们的算法比现有方法更快。考虑到预测准确性,我们发现,当预测器知道目标正在使用的路线规划算法时,HSMM方法会更好,但如果没有此假设,我们的算法会更好。

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